You are given two positive integer arrays spells and potions, of length n and m respectively, where spells[i] represents the strength of the ith spell and potions[j] represents the strength of the jth potion.
You are also given an integer success. A spell and potion pair is considered successful if the product of their strengths is at least success.
Return an integer array pairs of length n where pairs[i] is the number of potions that will form a successful pair with the ith spell.
Example 1:
Input: spells = [5,1,3], potions = [1,2,3,4,5], success = 7 Output: [4,0,3] Explanation: - 0th spell: 5 * [1,2,3,4,5] = [5,10,15,20,25]. 4 pairs are successful. - 1st spell: 1 * [1,2,3,4,5] = [1,2,3,4,5]. 0 pairs are successful. - 2nd spell: 3 * [1,2,3,4,5] = [3,6,9,12,15]. 3 pairs are successful. Thus, [4,0,3] is returned.
Example 2:
Input: spells = [3,1,2], potions = [8,5,8], success = 16 Output: [2,0,2] Explanation: - 0th spell: 3 * [8,5,8] = [24,15,24]. 2 pairs are successful. - 1st spell: 1 * [8,5,8] = [8,5,8]. 0 pairs are successful. - 2nd spell: 2 * [8,5,8] = [16,10,16]. 2 pairs are successful. Thus, [2,0,2] is returned.
Constraints:
n == spells.lengthm == potions.length1 <= n, m <= 1051 <= spells[i], potions[i] <= 1051 <= success <= 1010
咒语和药水的成功对数。
给你两个正整数数组 spells 和 potions ,长度分别为 n 和 m ,其中 spells[i] 表示第 i 个咒语的能量强度,potions[j] 表示第 j 瓶药水的能量强度。
同时给你一个整数 success 。一个咒语和药水的能量强度 相乘 如果 大于等于 success ,那么它们视为一对 成功 的组合。
请你返回一个长度为 n 的整数数组 pairs,其中 pairs[i] 是能跟第 i 个咒语成功组合的 药水 数目。
来源:力扣(LeetCode)
链接:https://leetcode.cn/problems/successful-pairs-of-spells-and-potions
著作权归领扣网络所有。商业转载请联系官方授权,非商业转载请注明出处。
思路是排序 + 二分。题意不难理解,注意看第一个例子,当发现 5 * 2 = 10 > 4 的时候,包括 2 在内后面所有的乘积都可以被判为 success,所以这里考虑对 potion 数组排序。
第一次做的时候用了两层 for 循环,发现最后有几个很长的 case 超时。优化的思路只能往二分上靠。这道题能用二分优化的前提是被二分的数据是有序的,因为我们对 potion 数组已经排过序,所以可以用二分。
时间O(mlogn)
空间O(n) - output array
Java实现
1 class Solution { 2 public int[] successfulPairs(int[] spells, int[] potions, long success) { 3 Arrays.sort(potions); 4 int m = spells.length; 5 int n = potions.length; 6 int[] res = new int[m]; 7 8 int i = 0; 9 while (i < m) { 10 long spell = (long) spells[i]; 11 int left = 0; 12 int right = n; 13 while (left < right) { 14 int mid = left + (right - left) / 2; 15 if (spell * potions[mid] < success) { 16 left = mid + 1; 17 } else { 18 right = mid; 19 } 20 } 21 res[i] = n - left; 22 i++; 23 } 24 return res; 25 } 26 }